Non‐Hermitian Edge Burst of Sound

H Hong‐Yu Zou (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) B Bing‐Bing Wang (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) Y Yong Ge (Research Center of Fluid Machinery Engineering and Technology) K Ke‐Qi Zhao (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) Y Yu‐Qi Chen (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) H Hong‐Xiang Sun (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) S Shou‐Qi Yuan (Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China) H Haoran Xue (Department of Physics) B Baile Zhang (Division of Physics and Applied Physics)

Abstract

ABSTRACT Non‐Hermitian band topology can give rise to phenomena with no counterparts in Hermitian systems. A well‐known example is the non‐Hermitian skin effect (NHSE), where Bloch eigenstates localize at a boundary, induced by a nontrivial spectrum winding number. In contrast, recent studies on lossy non‐Hermitian lattices have uncovered an unexpected boundary‐localized loss probability—a phenomenon that requires not only non‐Hermitian band topology but also the closure of the imaginary (dissipative) gap. Here, we demonstrate the non‐Hermitian edge burst in a classical‐wave metamaterial: a lossy nonreciprocal acoustic crystal. We show that, when the imaginary gap remains closed, edge bursts can occur at the right boundary, left boundary, or both boundaries simultaneously, all under the same non‐Hermitian band topology; the latter scenario is known as a bipolar edge burst. The occurrence of each scenario depends on the number and location of the imaginary gap closure points in the eigenenergy spectra. These findings generalize the concept of edge burst from quantum to classical wave systems, establish it as an intrinsic material property, and enrich the physics of the complex interplay between non‐Hermitian band topology and other physical properties in non‐Hermitian systems.

Article Details

Volume / Issue Vol. 38, Issue 15
Published March 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

H

Hong‐Yu Zou

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

B

Bing‐Bing Wang

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

Y

Yong Ge

Research Center of Fluid Machinery Engineering and Technology

K

Ke‐Qi Zhao

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

Y

Yu‐Qi Chen

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

H

Hong‐Xiang Sun

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

S

Shou‐Qi Yuan

Research Center of Fluid Machinery Engineering and Technology School of Physics and Electronic Engineering Jiangsu University Zhenjiang China

H

Haoran Xue

Department of Physics

B

Baile Zhang

Division of Physics and Applied Physics